The de Broglie wavelength lamda of an el...

The de Broglie wavelength `lamda` of an electron accelerated through a potential V in volts is

A

`(1.227)/(sqrt(V))nm`

B

`(0.1227)/(sqrt(V))nm`

C

`(0.01227)/(sqrt(V))nm`

D

`(12.27)/(sqrt(V))nm`

Text Solution

Verified by Experts

The correct Answer is:

A

(a) : Consider an electron of mass m and charge e accelerated from rest through potential V. Then, K=eV
`K=(1)/(2)mv^(2)=(p^(2))/(2m):.p=sqrt(2mK)=sqrt(2meV)`
The de Broglie wavelength `lamda` of the electron is
`lamda=(h)/(p)=(h)/(sqrt(2mK))=(h)/(sqrt(2meV))`
Substituting the numerical values of h, m, e, we
`lamda=(6.63xx10^(-34))/(sqrt(2xx9.1xx10^(-31)xx1.6xx10^(-19)xxV))`
`=(1.227xx10^(-9))/(sqrt(V))m=(1.227)/(sqrt(V))nm`

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